Resource-efficient performance testing of metalworking fluids utilizing single-point milling

IF 1.6 Q4 MATERIALS SCIENCE, COATINGS & FILMS
C. Taylor, Jack Secker, Syed Ashir Sajid, David Curtis, T. Liskiewicz, Thawhid Khan
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引用次数: 0

Abstract

ABSTRACT Metalworking fluids have the ability to extend cutting tool life and improve the machinability of materials. There is a need for the development of reliable machining tests which can be used to screen fluids with high confidence to allow for ranking in terms of performance. This study developed a novel methodology utilizing single-point milling to evaluate fluid performance in terms of tool wear and cutting forces across various aerospace alloys. The repeatability of the procedure was assessed and demonstrated by using standard deviation. The study showed alternative cutting fluid compositions could influence tool life performance across all the aerospace material variants. Inconel 718 was shown to be the hardest material to machine followed by Titanium Ti–5Al–5Mo–5V–3Cr and Titanium Ti–6Al–4V. However, with each material, there was a differentiation in fluid performance with up to 11% difference in average tool life between different fluids. GRAPHICAL ABSTRACT
利用单点铣削的金属加工液的资源效率性能测试
摘要金属加工液具有延长刀具寿命和提高材料可加工性的能力。需要开发可靠的机械加工测试,该测试可用于高置信度地筛选流体,以允许在性能方面进行排名。这项研究开发了一种新的方法,利用单点铣削来评估各种航空合金的刀具磨损和切削力方面的流体性能。使用标准偏差对程序的可重复性进行了评估和证明。研究表明,替代切削液成分可能会影响所有航空航天材料变体的刀具寿命性能。铬镍铁合金718被证明是最难加工的材料,其次是钛Ti–5Al–5Mo–5V–3Cr和钛Ti–6Al–4V。然而,对于每种材料,流体性能都存在差异,不同流体之间的平均工具寿命差异高达11%。图形摘要
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来源期刊
Tribology - Materials, Surfaces & Interfaces
Tribology - Materials, Surfaces & Interfaces MATERIALS SCIENCE, COATINGS & FILMS-
CiteScore
2.80
自引率
0.00%
发文量
15
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